5 resultados para 13200-091

em Helda - Digital Repository of University of Helsinki


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Since national differences exist in genes, environment, diet and life habits and also in the use of postmenopausal hormone therapy (HT), the associations between different hormone therapies and the risk for breast cancer were studied among Finnish postmenopausal women. All Finnish women over 50 years of age who used HT were identified from the national medical reimbursement register, established in 1994, and followed up for breast cancer incidence (n= 8,382 cases) until 2005 with the aid of the Finnish Cancer Registry. The risk for breast cancer in HT users was compared to that in the general female population of the same age. Among women using oral or transdermal estradiol alone (ET) (n = 110,984) during the study period 1994-2002 the standardized incidence ratio (SIR) for breast cancer in users for < 5 years was 0.93 (95% confidence interval (CI) 0.80–1.04), and in users for ≥ 5 years 1.44 (1.29–1.59). This therapy was associated with similar rises in ductal and lobular types of breast cancer. Both localized stage (1.45; 1.26–1.66) and cancers spread to regional nodes (1.35; 1.09–1.65) were associated with the use of systemic ET. Oral estriol or vaginal estrogens were not accompanied with a risk for breast cancer. The use of estrogen-progestagen therapy (EPT) in the study period 1994-2005 (n= 221,551) was accompanied with an increased incidence of breast cancer (1.31;1.20-1.42) among women using oral or transdermal EPT for 3-5 years, and the incidence increased along with the increasing duration of exposure (≥10 years, 2.07;1.84-2.30). Continuous EPT entailed a significantly higher (2.44; 2.17-2.72) breast cancer incidence compared to sequential EPT (1.78; 1.64-1.90) after 5 years of use. The use of norethisterone acetate (NETA) as a supplement to estradiol was accompanied with a higher incidence of breast cancer after 5 years of use (2.03; 1.88-2.18) than that of medroxyprogesterone acetate (MPA) (1.64; 1.49-1.79). The SIR for the lobular type of breast cancer was increased within 3 years of EPT exposure (1.35; 1.18-1.53), and the incidence of the lobular type of breast cancer (2.93; 2.33-3.64) was significantly higher than that of the ductal type (1.92; 1.67-2.18) after 10 years of exposure. To control for some confounding factors, two case control studies were performed. All Finnish women between the ages of 50-62 in 1995-2007 and diagnosed with a first invasive breast cancer (n= 9,956) were identified from the Finnish Cancer Registry, and 3 controls of similar age (n=29,868) without breast cancer were retrieved from the Finnish national population registry. Subjects were linked to the medical reimbursement register for defining the HT use. The use of ET was not associated with an increased risk for breast cancer (1.00; 0.92-1.08). Neither was progestagen-only therapy used less than 3 years. However, the use of tibolone was associated with an elevated risk for breast cancer (1.39; 1.07-1.81). The case-control study confirmed the results of EPT regarding sequential vs. continuous use of progestagen, including progestagen released continuously by an intrauterine device; the increased risk was seen already within 3 years of use (1.65;1.32-2.07). The dose of NETA was not a determinant as regards the breast cancer risk. Both systemic ET, and EPT are associated with an elevation in the risk for breast cancer. These risks resemble to a large extent those seen in several other countries. The use of an intrauterine system alone or as a complement to systemic estradiol is also associated with a breast cancer risk. These data emphasize the need for detailed information to women who are considering starting the use of HT.

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Campylobacter, mainly Campylobacter jejuni and C. coli, are worldwide recognized as a major cause of bacterial food-borne gastroenteritis. Epidemiological studies have shown handling or eating of poultry to be significant risk factors for human infections. Campylobacter contamination can occur at all stages of a poultry meat production cycle. The aim of this thesis was to study the occurrence and diversity of Campylobacter in broiler and turkey production in Finland. In summer 1999, 2.9 % of slaughtered broiler flocks were Campylobacter-positive. From the isolated strains 94 % were C. jejuni and 6% were C. coli. During years 2005-2006 one turkey parent flock, the hatchery, six different commercial turkey farms and different stages of the slaughterhouse were monitored during one and the half year. No Campylobacter were detected in either of the samples from the turkey parent flock or from the hatchery using the culture method. Instead PCR detected DNA of Campylobacter from the turkey parent flock and samples from the hatchery. Six out of 12 commercial turkey flocks were found negative at the farm level but only two of those were negative at slaughter. Campylobacter-positive samples within the flock at slaughter were detected between 0% and 94% with evisceration and chilling water being the most critical stages for contamination. All of Campylobacter isolates were shown to be C. jejuni. Campylobacter-positive turkey flocks were colonized by a limited number of Campylobacter genotypes both at the farm and slaughter level. In conclusion, in our first study in 1999 a low prevalence of Campylobacter in Finnish broiler flocks was detected and it has remained at a low level during the study period until the present. In the turkey meat production, we found that flocks which were negative at the farm became contaminated with Campylobacter at the slaughter process. These results suggest that proper and efficient cleaning and disinfection of slaughter and processing premises are needed to avoid cross-contamination. Prevention of colonization at the farm by a high level of biosecurity control and hygiene may be one of the most efficient ways to reduce the amount of Campylobacter-positive poultry meat in Finland. With a persistent low level of Campylobacter-positive flocks, it could be speculated that the use of logistic slaughtering, according to Campylobacter status at farm, might have be advantageous in reducing Campylobacter contamination of retail poultry products. However, the significance of the domestic poultry meat for human campylobacteriosis in Finland should be evaluated.

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Campylobacter, mainly Campylobacter jejuni and C. coli, are worldwide recognized as a major cause of bacterial food-borne gastroenteritis (World Health Organization 2010). Epidemiological studies have shown handling or eating of poultry to be significant risk factors for human infections. Campylobacter contamination can occur at all stages of a poultry meat production cycle. In summer 1999, every broiler flock from all three major Finnish poultry slaughterhouses was studied during a five month period. Caecal samples were taken in the slaughterhouses from five birds per flock. A total of 1 132 broiler flocks were tested and 33 (2.9%) of those were Campylobacter-positive. Thirty-one isolates were identified as C. jejuni and two isolates were C. coli. The isolates were serotyped for heat-stable antigens (HS) and genotyped by pulsed-field gel electrophoresis (PFGE). The most common serotypes found were HS 6,7, 12 and 4-complex. Using a combination of SmaI and KpnI patterns, 18 different PFGE types were identified. Thirty-five Finnish C. jejuni strains with five SmaI/SacII PFGE types selected among human and chicken isolates from 1997 and 1998 were used for comparison of their PFGE patterns, amplified fragment length polymorphism (AFLP) patterns, HaeIII ribotypes, and HS serotypes. The discriminatory power of PFGE, AFLP and ribotyping with HaeIII were shown to be at the same level for this selected set of strains, and these methods assigned the strains into the same groups. The PFGE and AFLP patterns within a genotype were highly similar, indicating genetic relatedness. An HS serotype was distributed among different genotypes, and different serotypes were identified within one genotype. From one turkey parent flock, the hatchery, six different commercial turkey farms (together 12 flocks) and from 11 stages at the slaughterhouse a total of 456 samples were collected during one and the half year. For the detection of Campylobacter both conventional culture and a PCR method were used. No Campylobacter were detected in either of the samples from the turkey parent flock or from the hatchery samples using the culture method. Instead PCR detected DNA of Campylobacter in five faecal samples from the turkey parent flock and in one fluff and an eggshell sample. Six out of 12 commercial turkey flocks were found negative at the farm level but only two of those were negative at slaughter. Campylobacter-positive samples within the flock at slaughter were detected between 0% and 94%, with evisceration and chilling water being the most critical stages for contamination. All of a total of 121 Campylobacter isolates were shown to be C. jejuni using a multiplex PCR assay. PFGE analysis of all isolates with KpnI restriction enzyme resulted in 11 PFGE types (I-XI) and flaA-SVR typing yielded nine flaA-SVR alleles. Three Campylobacter-positive turkey flocks were colonized by a limited number of Campylobacter genotypes both at the farm and slaughter level.In conclusion, in our first study in 1999 a low prevalence of Campylobacter in Finnish broiler flocks was detected and it has remained at a low level during the study period until the present. In the turkey meat production, we found that flocks which were negative at the farm became contaminated with Campylobacter at the slaughter process. These results suggest that proper and efficient cleaning and disinfection of slaughter and processing premises are needed to avoid cross-contamination. Prevention of colonization at the farm by a high level of biosecurity control and hygiene may be one of the most efficient ways to reduce the amount of Campylobacter-positive poultry meat in Finland. In Finland, with a persistent low level of Campylobacter-positive flocks, it could be speculated that the use of logistic slaughtering, according to Campylobacter status at farm, might have be advantageous in reducing Campylobacter contamination of retail poultry products. However, the significance of the domestic poultry meat for human campylobacteriosis in Finland should be evaluated.

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N-acetyl-β-D-glucosaminidaasi (NAGaasi) on glykosidaaseihin kuuluva, solujen lysosomeissa esiintyvä entsyymi, jota vapautuu maitoon utaretulehduksen aikana vaurioituneista utareen epiteelisoluista, neutrofiileistä ja makrofageista. NAGaasientsyymiaktiivisuuden on useissa tutkimuksissa havaittu korreloivan utareen tulehdustilan ja maidon soluluvun (SCC) kanssa ja sitä on ehdotettu käytettäväksi utareen epiteelisolutuhon mittaamiseen yksinään tai yhdistettynä SCC:n määritykseen. Koska saostuminen ei häiritse NAGaasi-entsyymiaktiivisuuden mittausta maidosta, entsyymiaktiivisuus ei muutu maitoa säilytettäessä ja entsyymin mittaaminen on melko yksinkertaista ja nopeaa, menetelmä vaikuttaisi sopivan hyvin seulontatestiksi piileville utaretulehduksille. NAGaasin käyttö on toistaiseksi rajoittunut tutkimuskäyttöön. Sen hyödyntämistä vaikeuttaa se, että terveille lehmille eri tutkimuksissa määritetyissä NAGaasi-entsyymiaktiivisuuden viitearvoissa on suurta vaihtelua. NAGaasi-entsyymiaktiivisuus maidossa on useiden tutkimusten mukaan korkeampi silloin, kun tulehduksen on aiheuttanut jokin merkittävä patogeeni kuin silloin, kun tulehduksen taustalla on vähäpätöinen patogeeni. Lypsykauden vaiheen on havaittu vaikuttavan maidon NAGaasi-entsyymiaktiivisuuteen siten, että aktiivisuudet ovat korkeampia heti poikimisen jälkeen ja lypsykauden lopulla. On myös havaittu, että normaalimaidossa NAGaasi-entsyymiaktiivisuus on hieman korkeampi loppumaidossa kuin alkumaidossa. Poikimakerran vaikutuksista NAGaasi-entsyymiaktiivisuuteen on ristiriitaisia tutkimustuloksia. Tämän tutkimuksen tavoitteena oli määrittää NAGaasi-entsyymiaktiivisuuden viitearvot terveen sekä utaretulehdusta sairastavan lypsylehmän maidossa, sekä selvittää tulehduksen voimakkuuden, aiheuttajapatogeenin, poikimakerran ja lypsykauden vaiheen vaikutusta kyseisen entsyymin aktiivisuuteen maidossa. Tutkimusaineistossa oli mukana kaikkiaan 838 vuosina 2000–2010 otettua maitonäytettä 62 eri lypsykarjatilalta Suomesta ja Virosta. Normaalimaidon NAGaasi-entsyymiaktiivisuuden viitearvot määritettiin yhdeksältä suomalaiselta lypsykarjatilalta kerätyistä 196 maitonäytteestä, jotka täyttivät asettamamme normaalimaidon kriteerit. Normaalimaidon kriteerit olivat seuraavat: SCC < 100 000, lehmällä ei ole utaretulehduksen oireita, poikimisesta on kulunut aikaa yli 30 vuorokautta ja edellisestä lypsystä yli 6 tuntia. NAGaasi-entsyymiaktiivisuus mitattiin modifioidulla Mattilan menetelmällä (Mattila 1985) vakioiduissa olosuhteissa. Aineisto analysoitiin käyttäen Stata Intercooler tilasto-ohjelman versiota 11.0 (Stata Corporation, Texas, USA). Maidon NAGaasientsyymiaktiivisuuteen terveessä neljänneksessä vaikuttavia tekijöitä tutkittiin lineaarisella sekamallilla, jossa sekoittavana tekijänä oli tila. SCC:n ja NAGaasi-entsyymiaktiivisuuden korrelaatiota arvioitiin terveillä lehmillä, piilevää utaretulehdusta sairastaneilla lehmillä ja koko aineistossa. Korrelaatiot laskettiin Pearsonin korrelaatiokertoimella. Tilastollisesti merkitsevänä raja-arvona kaikissa analyyseissä pidettiin p < 0.05. Normaalimaidon NAGaasi-entsyymiaktiivisuuden viitearvoiksi lehmillä, joilla poikimisesta oli kulunut yli 30 vrk, saatiin 0,09–1,04 pmol/min/μl maitoa. Verrattuna normaalimaidon NAGaasi-entsyymiaktiivisuuksien keskiarvoon (0,56) ja piilevää utaretulehdusta sairastaneiden lehmien NAGaasi-entsyymiaktiivisuuksien keskiarvoon (2,49), kliinistä utaretulehdusta sairastavien lehmien maidon NAGaasi-entsyymiaktiivisuus oli keskimäärin selvästi korkeampi (16,65). Keskiarvoissa oli selvä ero paikallisoireisten (12,24) ja yleisoireisten (17,74) lehmien välillä. Terveiden neljännesten maitonäytteistä määritetyn NAGaasi-entsyymiaktiivisuuden ja SCC:n välillä ei havaittu korrelaatiota. Piilevässä utaretulehduksessa havaittiin positiivinen korrelaatio (0,74) maidon NAGaasientsyymiaktiivisuuden ja SCC:n välillä. NAGaasi-entsyymiaktiivisuuteen vaikuttivat tilastollisesti merkitsevästi SCC, poikimisesta kulunut aika ja poikimakerta. Eri patogeeniryhmien osalta havaitsimme, että neljänneksissä, joista eristettiin vähäpätöinen patogeeni, NAGaasi-entsyymiaktiivisuus oli selvästi matalampi kuin neljänneksissä, joista eristettiin merkittävä patogeeni. NAGaasi-entsyymiaktiivisuuden keskiarvoksi vähäpätöisille patogeeneille (KNS, koryneformi) saatiin 2,82 ja merkittäville patogeeneille (S. aureus, Str. uberis, Str, agalactiae, Str. dysgalactiae, E.coli) 16,87.